106 research outputs found
The Generalized Operator Based Prony Method
The generalized Prony method introduced by Peter & Plonka (2013) is a
reconstruction technique for a large variety of sparse signal models that can
be represented as sparse expansions into eigenfunctions of a linear operator
. However, this procedure requires the evaluation of higher powers of the
linear operator that are often expensive to provide.
In this paper we propose two important extensions of the generalized Prony
method that simplify the acquisition of the needed samples essentially and at
the same time can improve the numerical stability of the method. The first
extension regards the change of operators from to , where
is an analytic function, while and possess the same
set of eigenfunctions. The goal is now to choose such that the powers
of are much simpler to evaluate than the powers of . The second
extension concerns the choice of the sampling functionals. We show, how new
sets of different sampling functionals can be applied with the goal to
reduce the needed number of powers of the operator (resp. ) in
the sampling scheme and to simplify the acquisition process for the recovery
method.Comment: 31 pages, 2 figure
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